https://doi.org/10.1140/epje/i2019-11861-4
Regular Article
Isochronal superpositioning in the equilibrium regime of superpressed propylene carbonate to ∼ 1.8 GPa: A study by diffusivity measurement of the fluorescent probe Coumarin 1
1
Service de Physique de l’Etat Condensé CEA-SPEC, CNRS, Université Paris-Saclay, CEA Saclay, F-91191, Gif sur Yvette, France
2
Laboratoire de Physique, ENS de Lyon, F-69342, Lyon, France
* e-mail: marco.bonetti@cea.fr
Received:
1
March
2019
Accepted:
28
June
2019
Published online:
6
August
2019
We address the problem of glass-forming of liquids by superpressing. We study the pressure-induced dynamic change of the fragile van der Waals liquid propylene carbonate towards the glassy state in the equilibrium regime by measuring the diffusivity of the fluorescent probe Coumarin 1 embedded in the host liquid. The probe diffusivity is measured by the fluorescence recovery after photobleaching (FRAP) technique across a bleached volume generated by the near-field diffracted pattern of a laser beam. The recovered fluorescence intensity fits to a stretched exponential with the diffusive time and the stretched exponent
as free parameters. In the pressure range [0.3-1.0]GPa the diffusivity decouples from the Stokes-Einstein relation. The decoupling correlates well to a decrease of
. The variation of
is non-monotonous with
showing a minimum at
s. We evidence an isochronal superpositioning over about 3 decades of
between ∼ 10 s and
s and a density scaling in the whole investigated pressure range. The pressure at which
is minimum coincides to the dynamical crossover pressure measured by other authors. This crossover pressure is compatible with the critical point of MCT theory. As our studied pressure range encompasses the critical pressure, the non-monotonous variation of
opens new insight in the approach to the critical point.
Key words: Flowing Matter: Liquids and Complex Fluids
© EDP Sciences, Società Italiana di Fisica and Springer-Verlag GmbH Germany, part of Springer Nature, 2019